Genome-wide association analysis identified molecular markers associated with important tea flavor-related metabolites

被引:63
作者
Fang, Kaixing [1 ]
Xia, Zhiqiang [2 ,3 ]
Li, Hongjian [1 ]
Jiang, Xiaohui [1 ]
Qin, Dandan [1 ]
Wang, Qiushuang [1 ]
Wang, Qing [1 ]
Pan, Chendong [1 ]
Li, Bo [1 ]
Wu, Hualing [1 ]
机构
[1] Guangdong Acad Agr Sci, Tea Res Inst, Guangdong Key Lab Tea Plant Resources Innovat & U, Guangzhou 510640, Peoples R China
[2] Chinese Acad Trop Agr Sci, Inst Biotechnol, Haikou 570100, Hainan, Peoples R China
[3] Hainan Univ, Haikou 570228, Hainan, Peoples R China
基金
中国国家自然科学基金;
关键词
D O I
10.1038/s41438-021-00477-3
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The characteristic secondary metabolites in tea (theanine, caffeine, and catechins) are important factors contributing to unique tea flavors. However, there has been relatively little research on molecular markers related to these metabolites. Thus, we conducted a genome-wide association analysis of the levels of these tea flavor-related metabolites in three seasons. The theanine, caffeine, and catechin levels in Population 1 comprising 191 tea plant germplasms were examined, which revealed that their heritability exceeded 0.5 in the analyzed seasons, with the following rank order (highest to lowest heritabilities): (+)-catechin>(-)-gallocatechin gallate>caffeine=(-)-epicatechin>(-)-epigallocatechin-3-gallate>theanine>(-)-epigallocatechin>(-)-epicatechin-3-gallate>catechin gallate>(+)-gallocatechin. The SNPs detected by amplified-fragment SNP and methylation sequencing divided Population 1 into three groups and seven subgroups. An association analysis yielded 307 SNP markers related to theanine, caffeine, and catechins that were common to all three seasons. Some of the markers were pleiotropic. The functional annotation of 180 key genes at the SNP loci revealed that FLS, UGT, MYB, and WD40 domain-containing proteins, as well as ATP-binding cassette transporters, may be important for catechin synthesis. KEGG and GO analyses indicated that these genes are associated with metabolic pathways and secondary metabolite biosynthesis. Moreover, in Population 2 (98 tea plant germplasm resources), 30 candidate SNPs were verified, including 17 SNPs that were significantly or extremely significantly associated with specific metabolite levels. These results will provide a foundation for future research on important flavor-related metabolites and may help accelerate the breeding of new tea varieties.
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页数:17
相关论文
共 52 条
[1]  
[Anonymous], 2020, GENOME WIDE SNP DETE, DOI [10.1101/20200902.280461, DOI 10.1101/20200902.280461]
[2]   Catechin content and the degree of its galloylation in oolong tea are inversely correlated with cultivation altitude [J].
Chen, Guan-Heng ;
Yang, Chin-Ying ;
Lee, Sin-Jie ;
Wu, Chia-Chang ;
Tzen, Jason T. C. .
JOURNAL OF FOOD AND DRUG ANALYSIS, 2014, 22 (03) :303-309
[3]   Proteolysis of chloroplast proteins is responsible for accumulation of free amino acids in dark-treated tea (Camellia sinensis) leaves [J].
Chen, Yiyong ;
Fu, Xiumin ;
Mei, Xin ;
Zhou, Ying ;
Cheng, Sihua ;
Zeng, Lanting ;
Dong, Fang ;
Yang, Ziyin .
JOURNAL OF PROTEOMICS, 2017, 157 :10-17
[4]   Transcriptomic and Metabolic Insights into the Distinctive Effects of Exogenous Melatonin and Gibberellin on Terpenoid Synthesis and Plant Hormone Signal Transduction Pathway in Camellia sinensis [J].
Di, Taimei ;
Zhao, Lei ;
Chen, Huimin ;
Qian, Wenjun ;
Wang, Peiqiang ;
Zhang, Xinfu ;
Xia, Tao .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2019, 67 (16) :4689-4699
[5]   Study of whole genome linkage disequilibrium in Nellore cattle [J].
Espigolan, Rafael ;
Baldi, Fernando ;
Boligon, Arione A. ;
Souza, Fabio R. P. ;
Gordo, Daniel G. M. ;
Tonussi, Rafael L. ;
Cardoso, Diercles F. ;
Oliveira, Henrique N. ;
Tonhati, Humberto ;
Sargolzaei, Mehdi ;
Schenkel, Flavio S. ;
Carvalheiro, Roberto ;
Ferro, Jesus A. ;
Albuquerque, Lucia G. .
BMC GENOMICS, 2013, 14
[6]  
[方开星 Fang Kaixing], 2016, [园艺学报, Acta Horticulturae Sinica], V43, P1791
[7]   Maize association population: a high-resolution platform for quantitative trait locus dissection [J].
Flint-Garcia, SA ;
Thuillet, AC ;
Yu, JM ;
Pressoir, G ;
Romero, SM ;
Mitchell, SE ;
Doebley, J ;
Kresovich, S ;
Goodman, MM ;
Buckler, ES .
PLANT JOURNAL, 2005, 44 (06) :1054-1064
[8]   The lowdown on linkage disequilibrium [J].
Gaut, BS ;
Long, AD .
PLANT CELL, 2003, 15 (07) :1502-1506
[9]  
Han ZX, 2017, DATA BRIEF, V10, P492, DOI 10.1016/j.dib.2016.12.025
[10]  
HARA Y, 1995, FOOD REV INT, V11, P371, DOI [10.1080/87559129509541053, 10.1080/87559129509541054, 10.1080/87559129509541056, 10.1080/87559129509541052]